Non-Symmetry in the Shock Refraction at a Closed Interface as a Recovery Mechanism

Dynamics Pub Date : 2024-01-10 DOI:10.3390/dynamics4010004
A. Markhotok
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引用次数: 0

Abstract

The possibility of a shock wave recovery at a discrete closed interface with a heated gas has been investigated. A two-dimensional model applied to conditions of optical discharges featuring spherical, elliptical, and drop-like configurations demonstrated that non-symmetry in the shock refraction contributes to the specific mechanism of recovery other than simply its compensation. Even though the full restoration of the hypersonic flow state does not occur in a strict sense of it, clear reverse changes toward the initial shape of the shock front eventually take place, thus creating an appearance of a full recovery seen in experiments. From analysis of different interface symmetries, the factors determining the recovery dynamics are identified. The results are directly applicable to the problem of energy deposition into a hypersonic flow; however, it can be useful anywhere else where the flow modifications following the interaction are important. The dimensionless form of the equations allows applications on any scale other than that demonstrated for the optical discharges.
封闭界面上冲击折射的非对称性是一种恢复机制
我们研究了冲击波在加热气体离散封闭界面恢复的可能性。二维模型适用于具有球形、椭圆形和滴状构造的光学放电条件,证明冲击波折射的非对称性有助于特定的恢复机制,而不仅仅是其补偿。尽管严格意义上的高超音速流动状态并未完全恢复,但冲击前沿的初始形状最终发生了明显的反向变化,从而形成了实验中看到的完全恢复的表象。通过对不同界面对称性的分析,确定了决定恢复动态的因素。这些结果直接适用于高超音速气流中的能量沉积问题,但在其他任何对相互作用后的气流变化有重要影响的地方都很有用。方程的无量纲形式允许应用于除光学放电所演示的规模之外的任何规模。
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CiteScore
1.20
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